Frasch Martin Gerbert
Department of Obstetrics and Gynecology and Institute on Human Development and Disability, University of Washington School of Medicine, Seattle, WA 98195, USA.
Bioengineering (Basel). 2023 Jul 10;10(7):822. doi: 10.3390/bioengineering10070822.
A code is generally defined as a system of signals or symbols for communication. Experimental evidence is synthesized for the presence and utility of such communication in heart rate variability (HRV) with particular attention to fetal HRV: HRV contains signatures of information flow between the organs and of response to physiological or pathophysiological stimuli as signatures of states (or syndromes). HRV exhibits features of time structure, phase space structure, specificity with respect to (organ) target and pathophysiological syndromes, and universality with respect to species independence. Together, these features form a spatiotemporal structure, a phase space, that can be conceived of as a manifold of a yet-to-be-fully understood dynamic complexity. The objective of this article is to synthesize physiological evidence supporting the existence of HRV code: hereby, the process-specific subsets of HRV measures indirectly map the phase space traversal reflecting the specific information contained in the code required for the body to regulate the physiological responses to those processes. The following physiological examples of HRV code are reviewed, which are reflected in specific changes to HRV properties across the signal-analytical domains and across physiological states and conditions: the fetal systemic inflammatory response, organ-specific inflammatory responses (brain and gut), chronic hypoxia and intrinsic (heart) HRV (iHRV), allostatic load (physiological stress due to surgery), and vagotomy (bilateral cervical denervation). Future studies are proposed to test these observations in more depth, and the author refers the interested reader to the referenced publications for a detailed study of the HRV measures involved. While being exemplified mostly in the studies of fetal HRV, the presented framework promises more specific fetal, postnatal, and adult HRV biomarkers of health and disease, which can be obtained non-invasively and continuously.
代码通常被定义为用于通信的信号或符号系统。本文综合了实验证据,以证明心率变异性(HRV)中这种通信的存在和效用,尤其关注胎儿HRV:HRV包含器官间信息流以及对生理或病理生理刺激的反应特征,这些特征作为状态(或综合征)的标志。HRV表现出时间结构、相空间结构、相对于(器官)靶点和病理生理综合征的特异性以及物种独立性方面的普遍性。这些特征共同形成了一个时空结构,即相空间,它可以被看作是一个尚未被充分理解的动态复杂性的流形。本文的目的是综合支持HRV代码存在的生理学证据:在此,HRV测量的特定过程子集间接映射了相空间遍历,反映了身体调节对这些过程的生理反应所需代码中包含的特定信息。本文回顾了HRV代码的以下生理学实例,这些实例反映在信号分析领域以及生理状态和条件下HRV属性的特定变化中:胎儿全身炎症反应、器官特异性炎症反应(脑和肠道)、慢性缺氧和固有(心脏)HRV(iHRV)、应激负荷(手术引起的生理应激)以及迷走神经切断术(双侧颈神经去神经支配)。建议未来的研究更深入地检验这些观察结果,作者建议感兴趣的读者参考参考文献,以详细研究涉及的HRV测量。虽然本文主要以胎儿HRV研究为例,但所提出的框架有望提供更具体的胎儿、产后和成人HRV健康与疾病生物标志物,这些标志物可以通过非侵入性和连续性方式获得。